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Published on: February 20, 2017
Dock5 is a new regulator of microtubule dynamic instability in osteoclasts
Sarah Guimbal1,2, Anne Morel1,2, David Guérit1,2
1Centre de Recherche de Biologie Cellulaire (CRBM), CNRS UMR 5237, Montpellier, Cedex 5, 34293, France.
Background Information:
Osteoclast resorption is dependent on a podosome-rich structure called sealing zone. It tightly attaches the osteoclast to the bone creating a favourable acidic microenvironment for bone degradation. This adhesion structure needs to be stabilised by microtubules whose acetylation is maintained by down-regulation of deacetylase HDAC6 and/or of microtubule destabilising kinase GSK3β activities. We already established that Dock5 is a guanine nucleotide exchange factor for Rac1. As a consequence, Dock5 inhibition results in a decrease of the GTPase activity associated with impaired podosome assembly into sealing zones and resorbing activity in osteoclasts. More, administration of C21, a chemical compound that directly inhibits the exchange activity of Dock5, disrupts osteoclast podosome organisation and protects mice against bone degradation in models recapitulating major osteolytic diseases.
Results:
In this report, we show that Dock5 knockout osteoclasts also present a reduced acetylated tubulin level leading to a decreased length and duration of microtubule growth phases, whereas their growth speed remains unaffected. Dock5 does not act by direct interaction with the polymerised tubulin. Using specific Rac inhibitors, we showed that Dock5 regulates microtubule dynamic instability through Rac-dependent and -independent pathways. The latter involves GSK3β inhibitory serine 9 phosphorylation downstream of Akt activation but not HDAC6 activity.
Conclusion:
We showed that Dock5 is a new regulator of microtubule dynamic instability in osteoclast.
Significance:
Dock5 dual role in the regulation of the actin cytoskeleton and microtubule, which both need to be intact for bone resorption, reinforces the fact that it is an interesting therapeutic target for osteolytic pathologies.
Insights
Dock5 regulates microtubule dynamics in osteoclasts, impacting bone resorption. This finding highlights Dock5 as a potential therapeutic target for osteolytic diseases.
Area of Science:
- Cell Biology
- Biochemistry
- Osteoclast Biology
Background:
- Osteoclast resorption relies on sealing zones stabilized by microtubules.
- Microtubule stability is regulated by deacetylase HDAC6 and kinase GSK3β.
- Dock5, a guanine nucleotide exchange factor for Rac1, is crucial for podosome assembly and osteoclast resorption.
Purpose of the Study:
- To investigate the role of Dock5 in regulating microtubule dynamics in osteoclasts.
- To elucidate the mechanisms by which Dock5 influences microtubule stability and osteoclast function.
Main Methods:
- Osteoclast culture and functional assays.
- Analysis of microtubule dynamics and acetylation.
- Pharmacological inhibition of Dock5 and Rac signaling.
- Western blotting for key signaling proteins (Akt, GSK3β).
Main Results:
- Dock5 knockout osteoclasts exhibit reduced acetylated tubulin and altered microtubule growth.
- Dock5 regulates microtubule dynamic instability via Rac-dependent and -independent pathways.
- The Rac-independent pathway involves Akt-mediated GSK3β inhibition, not HDAC6.
Conclusions:
- Dock5 is a novel regulator of microtubule dynamic instability in osteoclasts.
- Dock5's dual role in actin and microtubule regulation makes it a promising therapeutic target for osteolytic pathologies.
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